...
首页> 外文期刊>Complexity >Cascading Failures Analysis Considering Extreme Virus Propagation of Cyber-Physical Systems in Smart Grids
【24h】

Cascading Failures Analysis Considering Extreme Virus Propagation of Cyber-Physical Systems in Smart Grids

机译:考虑到智能电网中的网络 - 物理系统的极端病毒传播的级联故障分析

获取原文
           

摘要

Communication networks as smart infrastructure systems play an important role in smart girds to monitor, control, and manage the operation of electrical networks. However, due to the interdependencies between communication networks and electrical networks, once communication networks fail (or are attacked), the faults can be easily propagated to electrical networks which even lead to cascading blackout; therefore it is crucial to investigate the impacts of failures of communication networks on the operation of electrical networks. This paper focuses on cascading failures in interdependent systems from the perspective of cyber-physical security. In the interdependent fault propagation model, the complex network-based virus propagation model is used to describe virus infection in the scale-free and small-world topologically structured communication networks. Meanwhile, in the electrical network, dynamic power flow is employed to reproduce the behaviors of the electrical networks after a fault. In addition, two time windows, i.e., the virus infection cycle and the tripping time of overloaded branches, are considered to analyze the fault characteristics of both electrical branches and communication nodes along time under virus propagation. The proposed model is applied to the IEEE 118-bus system and the French grid coupled with different communication network structures. The results show that the scale-free communication network is more vulnerable to virus propagation in smart cyber-physical grids.
机译:作为智能基础设施系统的通信网络在智能纹理中发挥着重要作用,以监控,控制和管理电气网络的操作。然而,由于通信网络和电网之间的相互依存性,一旦通信网络失败(或被攻击),故障就可以容易地传播到甚至导致级联停电的电网;因此,调查通信网络失败对电网运行的影响至关重要。本文从网络 - 物理安全的角度侧重于相互依存系统的级联故障。在相互依存的故障传播模型中,基于复杂的基于网络的病毒传播模型用于描述无规模和小世界拓扑结构通信网络中的病毒感染。同时,在电网中,动态功率流量用于在故障后再现电网的行为。另外,两次Windows,即病毒感染周期和超载分支的跳闸时间被认为是在病毒传播下的时间内分析电气分支和通信节点的故障特征。所提出的模型应用于IEEE 118总线系统和与不同通信网络结构耦合的法式网格。结果表明,无尺寸的通信网络更容易受到智能网络物理网格中的病毒传播。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号